IrAE: an asparaginyl endopeptidase (legumain) in the gut of the hard tick Ixodes ricinus
Jazyk angličtina Země Anglie, Velká Británie Médium print-electronic
Typ dokumentu časopisecké články, Research Support, N.I.H., Extramural, práce podpořená grantem
Grantová podpora
P01 AI035707
NIAID NIH HHS - United States
T32 CA108462
NCI NIH HHS - United States
T32 CA108462-02
NCI NIH HHS - United States
PubMed
17336985
PubMed Central
PMC2587490
DOI
10.1016/j.ijpara.2006.12.020
PII: S0020-7519(07)00038-0
Knihovny.cz E-zdroje
- MeSH
- cysteinové endopeptidasy chemie genetika izolace a purifikace metabolismus MeSH
- fluorescenční protilátková technika nepřímá MeSH
- fylogeneze MeSH
- hemoglobiny metabolismus MeSH
- kathepsin B metabolismus MeSH
- klíště enzymologie genetika MeSH
- klonování DNA MeSH
- messenger RNA biosyntéza genetika MeSH
- molekulární sekvence - údaje MeSH
- Pichia genetika metabolismus MeSH
- polymerázová řetězová reakce s reverzní transkripcí MeSH
- rekombinantní proteiny biosyntéza genetika MeSH
- sekvence aminokyselin MeSH
- sekvence nukleotidů MeSH
- sekvenční seřazení MeSH
- transmisní elektronová mikroskopie MeSH
- trávicí systém enzymologie MeSH
- zvířata MeSH
- Check Tag
- ženské pohlaví MeSH
- zvířata MeSH
- Publikační typ
- časopisecké články MeSH
- práce podpořená grantem MeSH
- Research Support, N.I.H., Extramural MeSH
- Názvy látek
- asparaginylendopeptidase MeSH Prohlížeč
- cysteinové endopeptidasy MeSH
- hemoglobiny MeSH
- kathepsin B MeSH
- messenger RNA MeSH
- rekombinantní proteiny MeSH
Ticks are ectoparasitic blood-feeders and important vectors for pathogens including arboviruses, rickettsiae, spirochetes and protozoa. As obligate blood-feeders, one possible strategy to retard disease transmission is disruption of the parasite's ability to digest host proteins. However, the constituent peptidases in the parasite gut and their potential interplay in the digestion of the blood meal are poorly understood. We have characterised a novel asparaginyl endopeptidase (legumain) from the hard tick Ixodes ricinus (termed IrAE), which we believe is the first such characterisation of a clan CD family C13 cysteine peptidase (protease) in arthropods. By RT-PCR of different tissues, IrAE mRNA was only expressed in the tick gut. Indirect immunofluorescence and EM localised IrAE in the digestive vesicles of gut cells and within the peritrophic matrix. IrAE was functionally expressed in Pichia pastoris and reacted with a specific peptidyl fluorogenic substrate, and acyloxymethyl ketone and aza-asparagine Michael acceptor inhibitors. IrAE activity was unstable at pH > or = 6.0 and was shown to have a strict specificity for asparagine at P1 using a positional scanning synthetic combinatorial library. The enzyme hydrolyzed protein substrates with a pH optimum of 4.5, consistent with the pH of gut cell digestive vesicles. Thus, IrAE cleaved the major protein of the blood meal, hemoglobin, to a predominant peptide of 4kDa. Also, IrAE trans-processed and activated the zymogen form of Schistosoma mansoni cathepsin B1 -- an enzyme contributing to hemoglobin digestion in the gut of that bloodfluke. The possible functions of IrAE in the gut digestive processes of I. ricinus are compared with those suggested for other hematophagous parasites.
Zobrazit více v PubMed
Agyei AD, Runham NW, Blackstock N. Histochemical changes in the midgut of two ixodid tick species Boophilus microplus and Rhipicephalus appendiculatus during digestion of the blood meal. Exp. Appl. Acarol. 1992;13:187–212. PubMed
Bendtsen JD, Nielsen H, von Heijne G, Brunak S. Improved prediction of signal peptides: SignalP 3.0. J. Mol. Biol. 2004;340:783–795. PubMed
Boldbaatar D, Sikalizyo Sikasunge C, Battsetseg B, Xuan X, Fujisaki K. Molecular cloning and functional characterization of an aspartic protease from the hard tick Haemaphysalis longicornis. Insect Biochem. Mol. Biol. 2006;36:25–36. PubMed
Caffrey CR, Mathieu MA, Gaffney AM, Salter JP, Sajid M, Lucas KD, Franklin C, Bogyo M, McKerrow JH. Identification of a cDNA encoding an active asparaginyl endopeptidase of Schistosoma mansoni and its expression in Pichia pastoris. FEBS Lett. 2000;466:244–248. PubMed
Caffrey CR, McKerrow JH, Salter JP, Sajid M. Blood ‘n’ guts: an update on schistosome digestive peptidases. Trends Parasitol. 2004;20:241–248. PubMed
Chen JM, Dando PM, Rawlings ND, Brown MA, Young NE, Stevens RA, Hewitt E, Watts C, Barrett AJ. Cloning, isolation, and characterization of mammalian legumain, an asparaginyl endopeptidase. J. Biol. Chem. 1997;272:8090–8098. PubMed
Chen JM, Dando PM, Stevens RA, Fortunato M, Barrett AJ. Cloning and expression of mouse legumain, a lysosomal endopeptidase. Biochem. J. 1998;335:111–117. PubMed PMC
Chen JM, Fortunato M, Barrett AJ. Activation of human prolegumain by cleavage at a C-terminal asparagine residue. Biochem J. 2000;352:327–334. PubMed PMC
Choe Y, Leonetti F, Greenbaum DC, Lecaille F, Bogyo M, Bromme D, Ellman JA, Craik CS. Substrate profiling of cysteine proteases using a combinatorial peptide library identifies functionally unique specificities. J. Biol. Chem. 2006;281:12824–12832. PubMed
Coons LB, Rosell-Davis R, Tarnowski BI. Bloodmeal digestion in ticks. In: Sauer JR, Hair JA, editors. Morphology, physiology, and behavioral biology of ticks. Chichester, England: Ellis Horwood, Ltd.; 1986. pp. 248–279.
Dalton JP, Brindley PJ. Schistosome asparaginyl endopeptidase SM32 in hemoglobin digestion. Parasitol Today. 1996;12:125. PubMed
Delcroix M, Sajid M, Caffrey CR, Lim KC, Dvořák J, Hsieh I, Bahgat M, Dissous C, McKerrow JH. A multienzyme network functions in intestinal protein digestion by a platyhelminth parasite. J. Biol. Chem. 2006 in press. PubMed
Ekici ÖD, Götz MG, James KE, Li ZZ, Rukamp BJ, Asgian JL, Caffrey CR, Hansell E, Dvořák J, McKerrow JH, Potempa J, Travis J, Mikolajczyk J, Salvesen GS, Powers JC. Aza-peptide Michael acceptors: a new class of inhibitors specific for caspases and other clan CD cysteine proteases. J. Med. Chem. 2004;47:1889–1892. PubMed
Ferreira C, Capella AN, Sitnik R, Terra WR. Digestive enzymes in midgut cells, endo- and ectoperithrophic contents, and peritrophic membranes of Spodoptera frugiperda (Lepidoptera) larvae. Arch. Insect Biochem. Physiol. 1994;26:299–313.
Fogaca AC, da Silva PI, Jr, Miranda MT, Bianchi AG, Miranda A, Ribolla PE, Daffre S. Antimicrobial activity of a bovine hemoglobin fragment in the tick Boophilus microplus. J. Biol. Chem. 1999;274:25330–25334. PubMed
Grandjean O. Blood digestion in Ornithodoros moubata Murray sensu stricto Walton (Ixodoidea: Argasidae) females. I. Biochemical changes in the midgut lumen and ultrastructure of the midgut cells, related to intracellular digestion. Acarologia. 1984;25:147–165.
Greenbaum D, Medzihradszky KF, Burlingame A, Bogyo M. Epoxide electrophiles as activity-dependent cysteine protease profiling and discovery tools. Chem. Biol. 2000;7:569–581. PubMed
Grigor'eva LA. Morphofunctional changes in the midgut of tick females of the genus Ixodes (Acari: Ixodidae) during and after feeding. Parazitologiia. 2003;37:169–176. In Russian. PubMed
Grigor'eva LA, Amosova LI. Peritrophic matrix in the midgut of tick females of the genus Ixodes (Acari: Ixodidae) Parazitologiia. 2004;38:3–11. In Russian. PubMed
Grunclová L, Horn M, Vancová M, Sojka D, Franta Z, Mareš M, Kopáček P. Two secreted cystatins of the soft tick Ornithodoros moubata: Differential expression pattern and inhibitory specificity. Biol. Chem. 2006;387 in press. PubMed
Hall TA. BioEdit: a user-friendly biological sequence alignment editor and analysis program for Windows 95/98/NT. Nucl. Acids. Symp. Ser. 1999;41:95–98.
Hara-Nishimura I, Takeuchi Y, Nishimura M. Molecular characterization of a vacuolar processing enzyme related to a putative cysteine proteinase of Schistosoma mansoni. Plant Cell. 1993;5:1651–1659. PubMed PMC
Ishii S, Abe Y, Mitta M, Matsushita H, Kato I. A novel protease from jack bean seeds: Asparaginyl endopeptidase. J. Protein Chem. 1992;11:367–368.
Ishii S-I. Legumain: asparaginyl endopeptidases. Methods Enzymol. 1994;244:604–615. PubMed
Kato D, Boatright KM, Berger AB, Nazif T, Blum G, Ryan C, Chehade KA, Salvesen GS, Bogyo M. Activity-based probes that target diverse cysteine protease families. Nat. Chem. Biol. 2005;1:33–38. PubMed
Kaufman WR. Tick-host interaction: a synthesis of current concepts. Parasitol. Today. 1989;13:165. PubMed
Kevil CG, Walsh L, Laroux FS, Kalogeris T, Grisham MB, Alexander JS. An improved, rapid Northern protocol. Biochem. Biophys. Res. Commun. 1997;238:277–279. PubMed
Kopáček P, Weise C, Götz P. The prophenoloxidase from the wax moth Galleria mellonella: purification and characterization of the proenzyme. Insect. Biochem.Mol. Biol. 1995;25:1081–1091. PubMed
Kopáček P, Ždychová J, Yoshiga T, Weise C, Rudenko N, Law JH. Molecular cloning, expression and isolation of ferritins from two tick species--Ornithodoros moubata and Ixodes ricinus. Insect Biochem. Mol. Biol. 2003;233:103–113. PubMed
Kumar S, Tamura K, Jakobsen IB, Nei M. MEGA2: molecular evolutionary genetics analysis software. Bioinformatics. 2001;17:1244–1245. PubMed
Lara FA, Lins U, Bechara GH, Oliveira PL. Tracing heme in a living cell: hemoglobin degradation and heme traffic in digest cells of the cattle tick Boophilus microplus. J. Exp. Biol. 2005;208:3093–3101. PubMed
Leon-Felix J, Ortega-Lopez J, Orozco-Solis R, Arroyo R. Two novel asparaginyl endopeptidase-like cysteine proteinases from the protist Trichomonas vaginalis: their evolutionary relationship within the clan CD cysteine proteinases. Gene. 2004;335:25–35. PubMed
Li DN, Matthews SP, Antoniou AN, Mazzeo D, Watts C. Multistep autoactivation of asparaginyl endopeptidase in vitro and in vivo. J. Biol. Chem. 2003;278:38980–38990. PubMed
Manoury B, Hewitt EW, Morrice N, Dando PM, Barrett AJ, Watts C. An asparaginyl endopeptidase processes a microbial antigen for class II MHC presentation. Nature. 1998;396:695–699. PubMed
Mathieu MA, Bogyo M, Caffrey CR, Choe Y, Lee J, Chapman H, Sajid M, Craik CS, McKerrow JH. Substrate specificity of schistosome versus human legumain determined by P1-P3 peptide libraries. Mol. Biochem. Parasitol. 2002;121:99–105. PubMed
Mendiola J, Alonso M, Marquetti MC, Finlay C. Boophilus microplus: multiple proteolytic activities in the midgut. Exp. Parasitol. 1996;82:27–33. PubMed
Müntz K, Shutov AD. Legumains and their functions in plants. Trends Plant Sci. 2002;7:340–344. PubMed
Nakajima Y, Ogihara K, Taylor D, Yamakawa M. Antibacterial hemoglobin fragments from the midgut of the soft tick, Ornithodoros moubata (Acari: Argasidae) J. Med. Entomol. 2003;40:78–81. PubMed
Nutall PA. Pathogen-tick-host interactions: Borrelia bugdorferi and TBE virus. Zentralbl. Bakteriol. 1999;289:492–505. PubMed
Oliver EM, Skuce PJ, McNair CM, Knox DP. Identification and characterization of an asparaginyl proteinase (legumain) from the parasitic nematode, Haemonchus contortus. Parasitology. 2006;133:237–244. PubMed
Podboronov VM, Berdyev A. Protective mechanisms of Ixodidea tick and their vertebrate hosts (host-parasite interface) (Ashgabad, Ylym) 1991 In Russian.
Renard G, Garcia JF, Cardoso FC, Richter MF, Sakanari JA, Ozaki LS, Termignoni C, Masuda A. Cloning and functional expression of a Boophilus microplus cathepsin L-like enzyme. Insect Biochem. Mol. Biol. 2000;30:1017–1026. PubMed
Renard G, Lara FA, de Cardoso FC, Miguens FC, Dansa-Petretski M, Termignoni C, Masuda A. Expression and immunolocalization of a Boophilus microplus cathepsin L-like enzyme. Insect Mol. Biol. 2002;11:325–328. PubMed
Rudenko N, Golovchenko M, Edwards MJ, Grubhoffer L. Differential expression of Ixodes ricinus tick genes induced by blood feeding or Borrelia burgdorferi infection. J. Med. Entomol. 2005;42:36–41. PubMed
Saitou N, Nei M. The neighbor-joining method: a new method for reconstructing phylogenetic trees. Mol. Biol. Evol. 1987;4:406–425. PubMed
Sajid M, McKerrow JH. Cysteine proteases of parasitic organisms. Mol. Biochem Parasitol. 2002;120:1–21. PubMed
Sajid M, McKerrow JH, Hansell E, Mathieu MA, Lucas KD, Hsieh I, Greenbaum D, Bogyo M, Salter JP, Lim KC, Franklin C, Kim JH, Caffrey CR. Functional expression and characterization of Schistosoma mansoni cathepsin B and its trans-activation by an endogenous asparaginyl endopeptidase. Mol. Biochem. Parasitol. 2003;131:65–75. PubMed
Sonenshine DE. Biology of Ticks. vol. 1. New York: Oxford university Press; 1991.
Terra WR, Ferreira C. Insect digestive enzymes: properties, compartmentalization and function. Comp. Biochem. Physiol. 1994;109B:1–62.
Thompson JD, Gibson TJ, Plewniak F, Jeanmougin F, Higgins DG. The CLUSTAL X windows interface: flexible strategies for multiple sequence alignment aided by quality analysis tools. Nucleic Acids Res. 1997;25:4876–4882. PubMed PMC
Watts C, Matthews SP, Mazzeo D, Manoury B, Moss CX. Asparaginyl endopeptidase: case history of a class II MHC compartment protease. Immunol. Rev. 2005;207:218–228. PubMed
Williamson AL, Brindley PJ, Knox DP, Hotez PJ, Loukas A. Digestive proteases of blood-feeding nematodes. Trends Parasitol. 2003;9:417–423. PubMed
Xing R, Addington AK, Mason RW. Quantification of cathepsins B and L in cells. Biochem J. 1998;332:499–505. PubMed PMC
Insight Into the Dynamics of the Ixodes ricinus Nymphal Midgut Proteome
The structure and function of Iristatin, a novel immunosuppressive tick salivary cystatin
A novel type I cystatin of parasite origin with atypical legumain-binding domain
Characterization of gut-associated cathepsin D hemoglobinase from tick Ixodes ricinus (IrCD1)
The role of cystatins in tick physiology and blood feeding
Cysteine proteases from bloodfeeding arthropod ectoparasites
Dynamics of digestive proteolytic system during blood feeding of the hard tick Ixodes ricinus
Knockdown of proteins involved in iron metabolism limits tick reproduction and development
GENBANK
AY584752